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US4979730A - Sheet drive system having an encoder apparatus - Google Patents

Sheet drive system having an encoder apparatus
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Publication number
US4979730A
US4979730AUS07/435,911US43591189AUS4979730AUS 4979730 AUS4979730 AUS 4979730AUS 43591189 AUS43591189 AUS 43591189AUS 4979730 AUS4979730 AUS 4979730A
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United States
Prior art keywords
drive
envelope
roller
biasing
encoder
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Expired - Lifetime
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US07/435,911
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Russell W. Holbrook
Kevin J. O'Dea
Robert A. St. John
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Pitney Bowes Inc
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Pitney Bowes Inc
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Priority to US07/435,911priorityCriticalpatent/US4979730A/en
Assigned to PITNEY BOWES INC.reassignmentPITNEY BOWES INC.ASSIGNMENT OF ASSIGNORS INTEREST.Assignors: O'DEA, KEVIN J., ST. JOHN, ROBERT A., HOLBROOK, RUSSELL W.
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Abstract

An envelope drive assembly for assuming displacement control over an envelope along a deck supported on a support assembly including a drive means for receiving the envelope traversing the deck and assuming displacement control over the envelope. The drive means has a shaft having a drive roller fixably mounted centrally around a portion of the shaft such that a radial portion of the drive roller extent into an opening in the deck. A motor drive is provided for rotating the shaft. A support member having at least one biasing roller rotatively mounted thereto is positioned radially opposite the drive roller. The support member is pivotally mounted and biased such that the biasing roller is biased against the drive roller. A processor controls the drive motor. A sensor is provided for sensing the presence of the leading and trailing edge of the envelope in the nip area of the biasing roller and drive roller and informing the processor thereof. An encoder wheel is rotatively mounted to the shaft for informing the processor of the change in displacement of the envelope in the drive means.

Description

BACKGROUND OF THE INVENTION
This invention relates to sheet drive assemblies and, more particularly, to a sheet drive assembly having an encoder wheel apparatus.
For the purpose of illustration, a mail processing system will include an envelope feed path which transports an envelope between various stations such that operations, such as, weighing, printing, sealing and the like, can be performed on the envelope. It has been found that the system can be increased by decreasing the transport distance between stations. It would be further advantageous to have the stations aligned in a linear contiguous manner such that, for example, a long envelope ejected from one station is received by the next station and processing there commenced prior to complete ejecting from the preceding station. Such a procedure enables the approximation of a continuous processing system. In addition, the throughput of mail systems can be increased by matching or optimizing the station operation speed in accordance with the optimum speed relative to the envelope size. However, obtaining such optimum conditions requires a positive control over the envelope in addition to a means of monitoring envelope true speed and position.
SUMMARY OF THE PRESENT INVENTION
It is object of the present invention to present a sheet drive means which includes a true speed and position indicator for an envelope referencing the leading edge displacement of the envelope.
A mail processing apparatus will include a deck on which an envelope is transported. The deck includes a recess through which envelope drive wheels communicate with the envelope being transported by the deck. Above the envelope drive wheels are biasing wheels for biasing the envelope against the drive wheel for providing positive drive control over the envelope.
The drive wheels are fixably mounted to a drive shaft which is in communication with a motor. An encoder wheel is rotatably mounted on the drive shaft. The encoder wheel is mounted such that a traversing envelope provides a positive friction drive force to the encoder wheel. The encoder wheel includes an activation ring located opposite encoding sensors. The speed at which the encoder is driven by a traversing envelope and, hence, activation of the encoding sensor by the activation ring is relatable to the linear speed and position of the envelope. Located above the respective drive wheels and encoder wheel are biasing wheels which are mounted to an assembly to exert a downward bias force on an envelope position between the biasing wheels and the respective drive wheel and encoder wheel. A position sensor is located along the nip area between the biasing wheels and the drive wheel and encoder wheel. An envelope which is received in the nip area activates the nip sensor which informs a microprocessor motor controller to commence a control cycle.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a side view of an envelope feeder employing a drive and encoder assembly in accordance with the present invention.
FIG. 2 is an exploited view of the drive and encoder assembly in accordance with the present invention.
FIG. 3 is a partial sectioned elevated view of the drive and encoder assembly in accordance with the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
Referring to FIG. 1, an envelope feeder, generally indicated as 1, includes anenvelope separator station 2 for receiving anenvelope stack 3. At theseparator station 2, the bottom most envelopes are caused by drivenrollers 3 to be received by a singulation station 4. The singulation station 4 is generally comprised of reverse driven belt assembly 5 and forward driven belt assembly 6, both assemblies of any suitable construction. From theseparator station 2, the bottom most envelope 7 is received by a flap separation station 8 followed by a flap moistening station 9.
Generally, the flap separation station 8 is comprised of a suitable mechanism to position selected envelope 7 flap to pass over a sensor bank 10 prior to having moisture applied to the envelope queue line at moistener station 9.
Asingle motor 11 is inendless belt 12 communication with the belt assembly 6 and flap separation station 8. Asecond motor 13 is inendless belt 14 communication with the moistener station 9. The separation betweensuccessive feeder stations 2, 4 8 or 9 is less than the length of the smallest envelope processable by thefeeder 2. Themotors 11 and 13 are under the control of aprogrammable microprocessor 14 suitably programmed such that the drive belt assembly 6 is driven at a first speed (S1) until the leading of the envelope 7 is received in the flap separator station 8 whereafter the drive belt assembly 6 is driven by themotor 11 at a speed (S2) best suited to the separator station 8. As the leading edge of the envelope 7 is received by the moistener station 9, themotors 11 and 13 are driven by thecontroller 14 at a complimentary speed S3 and S4, respectively, such that the envelope 7 while under the influence of bothmotors 11 and 13 is driven at a constant speed.
Referring more particularly to the FIGS. 1 and 2, thefeed deck 14 provides a transport surface for an envelope 7 in the direction of arrow A. Thedeck 14 is a suitable support structure (not shown) by thebase 16 of thefeeder 1 in a conventional manner. At station 8, thedeck 14 includes anopening 18. Ashaft 15 is in driven bybelt 12 communicating with themotor 11 in a conventional manner. Adrive wheel 19 and asecond drive wheel 21 are fixably mounted to respective portions ofshaft 15 in axial spaced apart relationship. A portion of eachdrive wheel 19 and 21 partially extends through a deck opening 18. Rotatively mounted around a respective portion of theshaft 15 betweendrive wheels 19 and 21, in a manner subsequently described, is anencoder wheel assembly 23 which also partially extends through the deck opening 18.
Asupport member 25 is pivotally mounted around ashaft 27 fixed at one end to thesupport wall 26 of thefeeder 1. Thesupport member 25 includessupport arms 29 which have awheel shaft 30 fixably mounted therebetween. Rotatably mounted on thewheel shaft 30, by any conventional means, are biasingwheels 31, 33, and 35. Thebiasing wheels 31, 33, and 35 are aligned opposite torespective wheels 19, 23 and 21.
Acircuit board 37 is fixably mounted at one end to abase support post 20. Thecircuit board 37 extends to one side of theencoder wheel 23. A portion ofshaft 15 extends through theboard 37 in a manner subsequently described. Theboard 37 has mounted theretosensors 39 located opposite theencoder wheel 23. The IC board contains suitable electronics for processing thesensors 39 information and communicates thesensors 39 information to amicroprocessor 41 throughlines 43. Anoptical sensor 45 is also mounted to the base support structure in a conventional manner, such that, thesensor 45 is activated by an envelope 7 when the leading edge of the envelope 7 enters thewheel nip area 50. As aforenoted, station 8, in the preferred environment of the present invention, further includes a suitable flap separation apparatus (not shown). A description of a suitable apparatus can be found in U.S. patent application Ser. No. 291,097.
Theencoder wheel 23 as viewed in FIG. 3 will be described from left most component to right. A C-clamp 60 is fixably mounted axially in a conventional manner around theshaft 15, followed by aring washer 62 and awave washer 64. Abearing 66 is mounted around theshaft 15 having a portion which extends through theboard 37. A conventionalthruster bearing assembly 68 is then mounted around theshaft 15 followed by a bearing 70 andwasher 76 and C-clamp 78. Anencoder wheel hub 72 is mounted around the bearing hub of bearing 70 such that theencoder wheel hub 72 is free to rotate about theshaft 15. Awheel 74 is then mounted around theencoder wheel hub 72. The encoder wheel hub also includes thesensor activation ring 80.
Theactivation ring 80 is comprised of a plurality of magnetic elements of alternating polarities opposite thesensors 39 such that a repeating two-by-four (2×4) sensor matrix is created upon rotation of the encoder wheel. It can now be appreciated that the time variations of the actuation of thesensors 39 will give a true velocity reading of the envelope as it passes over theencoder wheel 23.
It is noted that themotor controller 14 is programmed to optimize the through speed of a envelope 7 as it traverses the various stations 6, 8, and 9 as a function of a variety of envelope parameters and feed operation modes, for example, sealing or non-sealing mix parameter mail, etc. As a result, the speed at which an envelope 7 is caused to traverse thefeeder 1 is continually varied. To prevent binding and assure proper operation of the feeder system, theencoder wheel 23, in combination with thesensor 39, provide the motor controller 14 a means of determining the envelopes true speed and position such that necessary speed adjustments may be made tomotors 11 and 13 and true position and speed be communicated to active sealing apparatus in order to track the flap gumline.

Claims (4)

What is claimed is:
1. A sheet drive assembly for assuming displacement control over a sheet material traversing along a deck supported by a support structure, comprising:
a drive means for receiving said sheet material and assuming control over said sheet material there through, said drive means having a shaft having at least one drive roller fixably mounted centrally around a portion of said shaft such that a radial portion of said drive roller extent into said opening in said deck, motor drive means for rotatively driving said shaft, a force against support means having at least one biasing roller rotatively mounted thereto for supporting said biasing roller radially opposite said drive roller, and means for biasing said support means such that said biasing roller is biased against said drive roller, said support means being pivotally mounted to said support structure such that said biasing roller may be displace in a arched manner by the presence of said sheet material between said drive roller and said biasing roller;
a processor means for controlling said drive means;
a sensor means for sensing the presence of the leading and trailing edge of said sheet material when received between said biasing roller and said drive roller and informing said processor thereof; and,
an encoder means for informing said processor of the change in displacement of said sheet material in said drive means;
said encoder means an encoder wheel rotatively mounted centrally around a portion of said shaft such that a radial portion of said encoder wheel extends into said opening in said deck, said encoder wheel having an actuation ring fixably mounted to one side face of said encoder wheel, sensing means fixably mounted to said support structure and aligned opposite said encoding means for sensing the radial displacement of said actuation ring, an encoder biasing wheel rotatively mounted to said support means radially opposite said encoder wheel such that said encoder wheel is caused to rotate at a speed directly related to the speed at which said sheet material passes there between.
2. An envelope drive assembly for assuming displacement control over an envelope transported along a deck supported by a support structure, comprising:
a drive means for receiving an envelope traversing said deck and assuming control over said envelope, said drive means having a shaft, at least one drive roller fixably mounted centrally around a portion of said shaft such that a radial portion of said drive roller extent into an opening in said deck and motor drive means for rotatively driving said shaft,
a support means having at least one biasing roller rotatively mounted to said support means for supporting said biasing roller radially opposite said drive roller and means for biasing said support means such that said biasing roller is biased against said drive roller, said support means being pivotally mounted to said support structure such that said biasing roller may be displace in an arched manner by said envelope located between said drive roller and said biasing roller;
a processor means for controlling said drive means;
a sensor means for sensing the presence of the leading and trailing edge of said envelope when received between said drive roller and said biasing roller and informing said processor thereof; and,
an encoder means for informing said processor of the change in displacement of said envelope in said drive means, said encoder means having an encoder wheel rotatively mounted centrally around a portion of said shaft such that a radial portion of said encoder wheel extends into the opening in said deck, said encoder wheel having an actuation ring fixably mounted to one side face of said encoder wheel, sensing means fixably mounted to said base and aligned axially said encoding means for sensing the radial displacement of said actuation ring, and an encoder biasing wheel rotatively mounted to said support means radially opposite said encoder wheel such that said encoder wheel is caused to rotate at a speed directly related to the speed at which said envelope passes said encoder wheel and said encoder biasing wheel.
3. An envelope drive assembly as claimed in claim 2, wherein said actuation ring is comprised of a plurality of magnetic element of alternating polarity.
4. An envelope drive assembly as claimed in claim 3 wherein said sensing means comprises a plurality of magnetically responsive sensors.
US07/435,9111989-11-141989-11-14Sheet drive system having an encoder apparatusExpired - LifetimeUS4979730A (en)

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US07/435,911US4979730A (en)1989-11-141989-11-14Sheet drive system having an encoder apparatus

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US07/435,911US4979730A (en)1989-11-141989-11-14Sheet drive system having an encoder apparatus

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US4979730Atrue US4979730A (en)1990-12-25

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Cited By (30)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5228792A (en)*1989-09-271993-07-20U.S. Philips Corp.Printing device
US5297785A (en)*1992-08-281994-03-29Bell & Howell Phillipsburg CompanyPre-feed shingling device for flat-article feeder
US5641159A (en)*1994-04-261997-06-24Heidelberger Druckmaschinen AgSynchronizing roller arrangement for transporting sheets into a sheet-processing machine
US6162180A (en)*1998-12-282000-12-19Medtronic, Inc.Non-invasive cardiac monitoring system and method with communications interface
US6311973B1 (en)*1997-09-042001-11-06Ricoh Company, Ltd.Paper stacker apparatus used with facsimile device
US7658196B2 (en)2005-02-242010-02-09Ethicon Endo-Surgery, Inc.System and method for determining implanted device orientation
US7775966B2 (en)2005-02-242010-08-17Ethicon Endo-Surgery, Inc.Non-invasive pressure measurement in a fluid adjustable restrictive device
US7775215B2 (en)2005-02-242010-08-17Ethicon Endo-Surgery, Inc.System and method for determining implanted device positioning and obtaining pressure data
US7844342B2 (en)2008-02-072010-11-30Ethicon Endo-Surgery, Inc.Powering implantable restriction systems using light
US7927270B2 (en)2005-02-242011-04-19Ethicon Endo-Surgery, Inc.External mechanical pressure sensor for gastric band pressure measurements
US8016744B2 (en)2005-02-242011-09-13Ethicon Endo-Surgery, Inc.External pressure-based gastric band adjustment system and method
US8016745B2 (en)2005-02-242011-09-13Ethicon Endo-Surgery, Inc.Monitoring of a food intake restriction device
US8034065B2 (en)2008-02-262011-10-11Ethicon Endo-Surgery, Inc.Controlling pressure in adjustable restriction devices
US8057492B2 (en)2008-02-122011-11-15Ethicon Endo-Surgery, Inc.Automatically adjusting band system with MEMS pump
US8066629B2 (en)2005-02-242011-11-29Ethicon Endo-Surgery, Inc.Apparatus for adjustment and sensing of gastric band pressure
US8100870B2 (en)2007-12-142012-01-24Ethicon Endo-Surgery, Inc.Adjustable height gastric restriction devices and methods
US8114345B2 (en)2008-02-082012-02-14Ethicon Endo-Surgery, Inc.System and method of sterilizing an implantable medical device
US8142452B2 (en)2007-12-272012-03-27Ethicon Endo-Surgery, Inc.Controlling pressure in adjustable restriction devices
US8152710B2 (en)2006-04-062012-04-10Ethicon Endo-Surgery, Inc.Physiological parameter analysis for an implantable restriction device and a data logger
US8187162B2 (en)2008-03-062012-05-29Ethicon Endo-Surgery, Inc.Reorientation port
US8187163B2 (en)2007-12-102012-05-29Ethicon Endo-Surgery, Inc.Methods for implanting a gastric restriction device
US8192350B2 (en)2008-01-282012-06-05Ethicon Endo-Surgery, Inc.Methods and devices for measuring impedance in a gastric restriction system
US8221439B2 (en)2008-02-072012-07-17Ethicon Endo-Surgery, Inc.Powering implantable restriction systems using kinetic motion
US8233995B2 (en)2008-03-062012-07-31Ethicon Endo-Surgery, Inc.System and method of aligning an implantable antenna
US8337389B2 (en)2008-01-282012-12-25Ethicon Endo-Surgery, Inc.Methods and devices for diagnosing performance of a gastric restriction system
US8377079B2 (en)2007-12-272013-02-19Ethicon Endo-Surgery, Inc.Constant force mechanisms for regulating restriction devices
US8591532B2 (en)2008-02-122013-11-26Ethicon Endo-Sugery, Inc.Automatically adjusting band system
US8591395B2 (en)2008-01-282013-11-26Ethicon Endo-Surgery, Inc.Gastric restriction device data handling devices and methods
US8870742B2 (en)2006-04-062014-10-28Ethicon Endo-Surgery, Inc.GUI for an implantable restriction device and a data logger
US8973917B2 (en)*2012-10-302015-03-10Ncr CorporationDeposit module

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US4015701A (en)*1975-08-281977-04-05Burroughs CorporationApparatus for driving a document through an encoder station
US4318540A (en)*1978-09-141982-03-09Burroughs CorporationConstant spacing document feeder
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Cited By (31)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5228792A (en)*1989-09-271993-07-20U.S. Philips Corp.Printing device
US5297785A (en)*1992-08-281994-03-29Bell & Howell Phillipsburg CompanyPre-feed shingling device for flat-article feeder
US5641159A (en)*1994-04-261997-06-24Heidelberger Druckmaschinen AgSynchronizing roller arrangement for transporting sheets into a sheet-processing machine
US6311973B1 (en)*1997-09-042001-11-06Ricoh Company, Ltd.Paper stacker apparatus used with facsimile device
US6162180A (en)*1998-12-282000-12-19Medtronic, Inc.Non-invasive cardiac monitoring system and method with communications interface
US8066629B2 (en)2005-02-242011-11-29Ethicon Endo-Surgery, Inc.Apparatus for adjustment and sensing of gastric band pressure
US7775215B2 (en)2005-02-242010-08-17Ethicon Endo-Surgery, Inc.System and method for determining implanted device positioning and obtaining pressure data
US7927270B2 (en)2005-02-242011-04-19Ethicon Endo-Surgery, Inc.External mechanical pressure sensor for gastric band pressure measurements
US8016744B2 (en)2005-02-242011-09-13Ethicon Endo-Surgery, Inc.External pressure-based gastric band adjustment system and method
US8016745B2 (en)2005-02-242011-09-13Ethicon Endo-Surgery, Inc.Monitoring of a food intake restriction device
US7775966B2 (en)2005-02-242010-08-17Ethicon Endo-Surgery, Inc.Non-invasive pressure measurement in a fluid adjustable restrictive device
US7658196B2 (en)2005-02-242010-02-09Ethicon Endo-Surgery, Inc.System and method for determining implanted device orientation
US8152710B2 (en)2006-04-062012-04-10Ethicon Endo-Surgery, Inc.Physiological parameter analysis for an implantable restriction device and a data logger
US8870742B2 (en)2006-04-062014-10-28Ethicon Endo-Surgery, Inc.GUI for an implantable restriction device and a data logger
US8187163B2 (en)2007-12-102012-05-29Ethicon Endo-Surgery, Inc.Methods for implanting a gastric restriction device
US8100870B2 (en)2007-12-142012-01-24Ethicon Endo-Surgery, Inc.Adjustable height gastric restriction devices and methods
US8377079B2 (en)2007-12-272013-02-19Ethicon Endo-Surgery, Inc.Constant force mechanisms for regulating restriction devices
US8142452B2 (en)2007-12-272012-03-27Ethicon Endo-Surgery, Inc.Controlling pressure in adjustable restriction devices
US8337389B2 (en)2008-01-282012-12-25Ethicon Endo-Surgery, Inc.Methods and devices for diagnosing performance of a gastric restriction system
US8192350B2 (en)2008-01-282012-06-05Ethicon Endo-Surgery, Inc.Methods and devices for measuring impedance in a gastric restriction system
US8591395B2 (en)2008-01-282013-11-26Ethicon Endo-Surgery, Inc.Gastric restriction device data handling devices and methods
US8221439B2 (en)2008-02-072012-07-17Ethicon Endo-Surgery, Inc.Powering implantable restriction systems using kinetic motion
US7844342B2 (en)2008-02-072010-11-30Ethicon Endo-Surgery, Inc.Powering implantable restriction systems using light
US8114345B2 (en)2008-02-082012-02-14Ethicon Endo-Surgery, Inc.System and method of sterilizing an implantable medical device
US8057492B2 (en)2008-02-122011-11-15Ethicon Endo-Surgery, Inc.Automatically adjusting band system with MEMS pump
US8591532B2 (en)2008-02-122013-11-26Ethicon Endo-Sugery, Inc.Automatically adjusting band system
US8034065B2 (en)2008-02-262011-10-11Ethicon Endo-Surgery, Inc.Controlling pressure in adjustable restriction devices
US8187162B2 (en)2008-03-062012-05-29Ethicon Endo-Surgery, Inc.Reorientation port
US8233995B2 (en)2008-03-062012-07-31Ethicon Endo-Surgery, Inc.System and method of aligning an implantable antenna
US8973917B2 (en)*2012-10-302015-03-10Ncr CorporationDeposit module
EP2728558B1 (en)*2012-10-302019-10-30NCR CorporationDeposit module

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